Publication date: Jun 23, 2026
Wastewater-based epidemiology (WBE) provides an efficient, population-wide tool for monitoring SARS-CoV-2 transmission and evolution, overcoming limitations of clinical testing. Here, we designed and applied an upgraded Spike-Seq workflow integrating third-generation nanopore sequencing on the PromethION platform to achieve complete spike gene coverage from wastewater samples collected in Athens (December 2024-February 2025). This workflow enabled simultaneous quantification of lineage-defining markers and detection of previously uncharacterized mutations in wastewater samples. Our results identified the sustained dominance of the JN. 1 lineage (>80% frequency), with only transient signals from XFG, NB. 1.8. 1, and LP. 8.1variants. Notably, we revealed recurrent substitutions in the N-terminal domain and S2 region, including L24F and I1130K, which indicate continued diversification of the dominant JN. 1-associated viral population. Integration of sequencing with qPCR viral load data revealed a peak in community infection pressure in January 2025, which decoupled from the rising frequency of specific mutational hotspots. Our findings demonstrate the utility of amplicon-based wastewater nanopore sequencing for monitoring SARS-CoV-2 genetic diversity in wastewater.

| Concepts | Keywords |
|---|---|
| Athens | COVID-19 |
| Epidemiology | Environmental virology |
| Nanopore | Genomic surveillance |
| Viral | Infectious disease monitoring |
| Nanopore sequencing | |
| Spike protein | |
| Viral variants |
Semantics
| Type | Source | Name |
|---|---|---|
| disease | MESH | XFG |
| disease | MESH | infection |
| disease | MESH | COVID-19 |
| disease | MESH | Infectious disease |
| pathway | REACTOME | Infectious disease |